Carracedo A, Pandolfi P P
Cancer Genetics Program, Beth Israel Deaconess Cancer Center, Department of Medicine and Pathology, Harvard Medical School, Boston, MA 02215, USA.
Oncogene. 2008 Sep 18;27(41):5527-41. doi: 10.1038/onc.2008.247.
The tumor suppressor PTEN was originally identified as a negative regulator of the phosphoinositide 3-kinase (PI3K) signaling, a main regulator of cell growth, metabolism and survival. Yet this function of PTEN is extremely relevant for its tumor-suppressive ability, albeit the recent characterization of many PI3K-independent tumor-suppressive activities. PI3K-mediated PIP(3) production leads to the activation of the canonical AKT-mTORC1 pathway. The implications of this signaling cascade in health and disease have been underscored by the high number of regulators within the pathway whose alterations give rise to different malignancies, including familiar syndromes, metabolic dysfunctions and cancer. Moreover, PI3K is tightly buffered at multiple levels by downstream components, which have turned this signaling pathway literally upside down. PI3K and its downstream components in turn cross-talk with a number of other pathways, thereby leading to a complex network of signals that may have dramatic consequences when perturbed. Here, we review the current status of the PTEN-PI3K signaling pathway with special emphasis on the most recent data on targets and regulation of the PTEN-PI3K axis. This provides novel provocative therapeutic implications based on the targeted modulation of PI3K-cross-talking signals.
肿瘤抑制因子PTEN最初被鉴定为磷酸肌醇3激酶(PI3K)信号传导的负调节因子,PI3K信号传导是细胞生长、代谢和存活的主要调节因子。尽管最近发现了许多不依赖PI3K的肿瘤抑制活性,但PTEN的这一功能与其肿瘤抑制能力密切相关。PI3K介导的PIP(3)生成导致经典的AKT-mTORC1信号通路激活。该信号级联在健康和疾病中的意义已被该通路中大量调节因子所强调,这些调节因子的改变会引发不同的恶性肿瘤,包括常见综合征、代谢功能障碍和癌症。此外,PI3K在多个水平上受到下游成分的严格缓冲,这实际上使该信号通路发生了逆转。PI3K及其下游成分又与许多其他信号通路相互作用,从而形成一个复杂的信号网络,当受到干扰时可能会产生重大后果。在此,我们回顾PTEN-PI3K信号通路的现状,特别强调关于PTEN-PI3K轴的靶点和调节的最新数据。这基于对PI3K相互作用信号的靶向调节提供了新的具有启发性的治疗意义。